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PMID: 33907364 Published · ppublish English

A Pilot Study on EEG-Based Evaluation of Visually Induced Motion Sickness.

The Journal of imaging science and technology ·Vol. 64 ·No. 2 ·2020-03-01

Liu R, Xu M, Zhang Y, Peli E, Hwang AD

Abstract

The most prominent problem in virtual reality (VR) technology is that users may experience motion sickness-like symptoms when they immerse into a VR environment. These symptoms are recognized as visually induced motion sickness (VIMS) or virtual reality motion sickness (VRMS). The objectives of this study were to investigate the association between the electroencephalogram (EEG) and subjectively rated VIMS level (VIMSL) and find the EEG markers for VIMS evaluation. In this study, a VR-based vehicle-driving simulator (VDS) was used to induce VIMS symptoms, and a wearable EEG device with four electrodes, the Muse, was used to collect EEG data of subjects. Our results suggest that individual tolerance, susceptibility, and recoverability to VIMS varied largely among subjects; the following markers were shown to be significantly different from no-VIMS and VIMS states (P < 0.05): (1) Means of gravity frequency (GF) for theta@FP1, alpha@TP9, alpha@FP2, alpha@TP10, and beta@FP1; (2) Standard deviation of GF for alpha@TP9, alpha@FP1, alpha@FP2, alpha@TP10, and alpha@(FP2-FP1); (3) Standard deviation of power spectral entropy (PSE) for FP1; (4) Means of Kolmogorov complexity (KC) for TP9, FP1, and FP2. These results also demonstrate that it is feasible to perform VIMS evaluation using an EEG device with a small number of electrodes.

Keywords
EEG Kolmogorov complexity gravity frequency power spectral entropy virtual reality visually induced motion sickness
Article Info
Journal
The Journal of imaging science and technology
Abbr.
J Imaging Sci Technol
ISSN
1062-3701
Published
2020-03-01
Language
English
Country/Region
United States
NLM ID
9211663
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